FP6Individual fellowship2007–2009

HPPARA FUNCTION · Human PPARa function in the vascular system

FP6 — Marie Curie Actions (Human Resources and Mobility)

Duration
2007-03-01 → 2009-01-31
EU contribution
€150,237
Participants
1
Scheme
EIF

Lines connect the coordinator with its partners.

Results in brief

Final Activity Report Summary - HPPARA FUNCTION (Human PPARa function in the vascular system)

Animal models and, specifically, mouse models have been the most useful tool to increase our understanding of physiology. However, rodents are not humans and experiments performed in mice cannot accurately predict outcomes of a disease progression in humans. The generation of humanised mice carrying human genes and mimicking human physiological systems may help overcome these obstacles. PPAR? (peroxisome proliferator-activated receptor alpha) belongs to the nuclear receptor superfamily which is a group of cellular membrane receptors that can be activated by specific ligands. PPAR? activation is implicated in lipid metabolism, inflammation and atherosclerosis. Indeed, the use of synthetic agonists for PPAR? in clinical treatments (specifically fibric acid derivatives like fenofibrate) has demonstrated to have beneficial effects on cardiovascular disease outcome by lowering plasma lipid levels (triglycerides and cholesterol) and probably by controlling inflammation. However, no data are available concerning the relative contribution of the human PPAR? protein to atherosclerosis process. In this project we have worked with a humanised mouse expressing the human PPAR? gene (PPAR?KI mice) to predict the physiological functions of this protein in humans. Surprisingly, PPAR?KI mice express very low levels of PPAR? ?in liver while its expression is normal in all other tissues analysed. In addition, fenofibrate treatment failed to influence plasma lipids in these mice. These data show that human PPAR? is not enough expressed in mouse liver to be functional in PPAR?KI mice and demonstrate that fenofibrate lipid lowering properties depend on hepatic PPAR? activation. This unexpected result turned these mice into a suitable model to study the peripheral human PPAR? functions independent from the known roles of PPAR? in liver. To study these functions during atherosclerotic plaque formation, humanised mice were fed with a 'western-like' diet (lipid enriched food which induces atherosclerotic plaque formation in mice aortas) and supplemented or not with fenofibrate (to activate PPAR??. After ten weeks of diet we found that the humanised mice treated with fenofibrate developed atherosclerotic plaques to a lower extent than untreated humanised mice without any change in plasma lipid levels. Thus, we can conclude, that peripheral human PPAR? exerts anti-atherogenic actions independently of its lipid-lowering properties.

Data: CORDIS, © European Union

Project objective

Atherosclerosis is a chronic disease characterized by the accumulation of lipids in the arteries accompanied by a local inflammatory response. The nuclear receptor peroxisome proliferator-activated receptor alpha (PPARa) appears to affect the development o f atherosclerotic lesions through its metabolic and anti-inflammatory effects. The role of PPARa in the control of lipid and lipoprotein metabolism has been extensively studied. Moreover, the role of murine PPARa has been studied in vivo using different mo use models of atherosclerosis. However, little is known on the activity of human PPARa in vivo in the vascular system. Therefore, the Goal of this project is to characterize the role of human PPARa protein in the control of vascular inflammation using an original humanized PPARa animal model (KIPPARa mice).To analyze the role of human PPARa protein in the atherogenic process in vivo, we will cross the KI-PPARa mice with an atherosclerotic mice model, such as the KIapoE2 mice. These mice exhibit plasma lipo protein characteristics that are equivalent to those of type III and IIB hyperlipidemic subjects, they develop spontaneous atherosclerotic lesions and they also respond to atherogenic high fat and cholesterol diets. KIPPARa mice have been recently generated in the host laboratory.This model has been validated by checking human PPARa mRNA and protein expression in different tissues. The metabolic consequences of human PPARa expression in KIPPARa mice are currently being analysed in the host laboratory. Therefore, taking into account both models, the generation of KIPPARa; KIapoE2 mouse model will be our original main tool to carry out this project. The results are anticipated to open new perspectives for human PPARa as a molecular target for the treatment of atherosclerosis.

Original text from CORDIS.

Participants

  • INSTITUT NATIONAL DE LA SANTE ET DE LA RECHERCHE MEDICALE · PARISCoordinatorFrance

Links

Data: CORDIS, © European Union